Atomic Force Microscope Measurements of the Hardness and Elasticity of Peritubular and Intertubular Human Dentin
- 1 February 1996
- journal article
- Published by ASME International in Journal of Biomechanical Engineering
- Vol. 118 (1) , 133-135
- https://doi.org/10.1115/1.2795939
Abstract
An atomic force microscope was used to measure the hardness and elasticity of fully-hydrated peritubular and intertubular human dentin. The standard silicon nitride AFM tip and silicon cantilever assembly were replaced with a diamond tip and stainless steel cantilever having significantly higher stiffness. Hardness was measured as the ratio of the applied force to the projected indentation area for indentations with depths from 10–20 nm. The sample stiffness was measured by imaging specimens in a force-modulated mode. Hardness values of 2.3 ± 0.3 GPa and 0.5 ± 0.1 GPa were measured for the peritubular and intertubular dentin, respectively. Stiffness imaging revealed that the elastic modulus of the peritubular dentin was spatially homogeneous; whereas, there was considerable spatial variation in the elasticity of the intertubular dentin. The atomic force microscope can be used to measure the mechanical properties of fully hydrated calcified tissues at the submicron level of spatial resolution, thus augmenting more traditional depth sensing probes.Keywords
This publication has 10 references indexed in Scilit:
- Nanoindentation Hardness Tests Using a Point Contact MicroscopeJournal of Tribology, 1994
- Atomic-force microscopic study of dimensional changes in human dentine during dryingArchives of Oral Biology, 1993
- Assessment by Nano-indentation of the Hardness and Elasticity of the Resin-Dentin Bonding AreaJournal of Dental Research, 1993
- Hardness and young's modulus determined by nanoindentation technique of filler particles of dental restorative materials compared with human enamelJournal of Biomedical Materials Research, 1993
- Numerical density and distributional pattern of dentin tubulesActa Odontologica Scandinavica, 1992
- Limits of imaging resolution for atomic force microscopy of moleculesApplied Physics Letters, 1991
- Using force modulation to image surface elasticities with the atomic force microscopeNanotechnology, 1991
- A method for interpreting the data from depth-sensing indentation instrumentsJournal of Materials Research, 1986
- The relationship between dentin microhardness and tubule densityDental Traumatology, 1985
- Scanning electron microscopic investigation of human dentinal tubulesArchives of Oral Biology, 1976